High-performance of quasi-solid-state complementary electrochromic devices based on Al3+/Li+ dual-ion electrolyte
Monovalent lithium ion has been successfully employed in quasi-solid-state electrochromic devices (ECDs), but it still needs to be optimized in terms of cost, life stability and so on. Herein, a novel electrolyte containing multivalent Aluminum ion (Al3+) was introduced into the ECDs and compared wi...
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Veröffentlicht in: | Solar energy materials and solar cells 2021-09, Vol.230, p.111196, Article 111196 |
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Sprache: | eng |
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Zusammenfassung: | Monovalent lithium ion has been successfully employed in quasi-solid-state electrochromic devices (ECDs), but it still needs to be optimized in terms of cost, life stability and so on. Herein, a novel electrolyte containing multivalent Aluminum ion (Al3+) was introduced into the ECDs and compared with Lithium ion ECDs. With acrylate-based UV curable glue as the gel electrolyte curing adhesive, WO3 and NiOx films as the complementary counter electrode layers, Li+ (ECD-1), Al3+ (ECD-2) and Al3+/Li+ double ion (ECD-3) as the electrolyte ions, three types of quasi-solid-state ECDs were prepared as Glass/ITO/WO3/polymer electrolyte/NiOx/ITO/Glass. The results showed that the optical modulation amplitude ΔT of three devices is 54.3%, 51.6%, and 53.2%, respectively, while the coloring efficiency (CE) is 62.2, 64.6, and 62.2 cm2/C. The cycle stability test results displayed that during 2000 CA cycles (lasting for 40,000 s, 20 s for one cycle), the optical modulation amplitude ΔT of the Al3+/Li+ devices only decays 16%, which has the excellent cycle durability compared with Li+ devices. This article is an effective attempt to expand the quasi-solid-state electrochromic electrolyte with multivalent ions species, which can broaden the application range of the devices.
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•WO3//NiOx complementary quasi-solid-state electrochromic devices based on Al3+/Li+ dual-ion electrolyte.•UV curing adhesive as the gel electrolyte carrier for ECDs.•Al3+/Li+ dual-ion devices achieve better electrochemical cycle stability. |
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ISSN: | 0927-0248 1879-3398 |
DOI: | 10.1016/j.solmat.2021.111196 |